A jet accelerates at a=3.92 m/s2 from rest until it reaches its takeoff velocity of 360 km/hr. It has to travel for 5 seconds at its takeoff velocity before taking off. What's the minimum distance that

asked Aug 13, 2021 57.5k views

4 votes

by Arst

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4 votes

Answer:

$\Delta s = 1775.510\,m$

Step-by-step explanation:

The minimum distance for takeoff is:

$\Delta s = \Delta s_(1) + \Delta s_(2)$

$\Delta s = (v_(f)^(2)-v_(o)^(2))/(2\cdot a) + v_(f)\cdot \Delta t$

$\Delta s = ((100\,(m)/(s) )^(2)-(0\,(m)/(s) )^(2))/(2\cdot (3.92\,(m)/(s^(2))))+(100\,(m)/(s) )\cdot (5\,s)$

$\Delta s = 1775.510\,m$

Daan Timmer answered Aug 20, 2021

4.1k points

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